Highly Efficient Quasi 2D Blue Perovskite Electroluminescence Leveraging a Dual Ligand Composition

Author:

Alahbakhshi Masoud1,Mishra Aditya2ORCID,Verkhogliadov Grigorii34,Turner Emigdio E.5,Haroldson Ross4,Adams Austen C.4,Gu Qing1,Rack Jeffrey J.5,Slinker Jason D.246ORCID,Zakhidov Anvar A.2347ORCID

Affiliation:

1. Department of Electrical and Computer Engineering The University of Texas at Dallas 800 West Campbell Road Richardson TX 75080 USA

2. Department of Materials Science and Engineering The University of Texas at Dallas 800 West Campbell Road Richardson TX 75080 USA

3. School of Physics and Engineering ITMO University Kronverkskiy pr. 49 St.Petersburg 197101 Russia

4. Department of Physics The University of Texas at Dallas 800 West Campbell Road Richardson TX 75080 USA

5. Department of Chemistry and Chemical Biology Laboratory for Magneto‐Optic Spectroscopy University of New Mexico Albuquerque NM 87131 USA

6. Department of Chemistry The University of Texas at Dallas 800 West Campbell Road Richardson TX 75080 USA

7. NanoTech Institute The University of Texas at Dallas 800 West Campbell Road Richardson TX 75080 USA

Abstract

AbstractPerovskite light‐emitting diodes (PeLEDs) are advancing because of their superior external quantum efficiencies (EQEs) and color purity. Still, additional work is needed for blue PeLEDs to achieve the same benchmarks as the other visible colors. This study demonstrates an extremely efficient blue PeLED with a 488 nm peak emission, a maximum luminance of 8600 cd m−2, and a maximum EQE of 12.2% by incorporating the double‐sided ethane‐1,2‐diammonium bromide (EDBr2) ligand salt along with the long‐chain ligand methylphenylammonium chloride (MeCl). The EDBr2 successfully improves the interaction between 2D perovskite layers by reducing the weak van der Waals interaction and creating a Dion–Jacobson (DJ) structure. Whereas the pristine sample (without EDBr2) is inhibited by small stacking number (n) 2D phases with nonradiative recombination regions that diminish the PeLED performance, adding EDBr2 successfully enables better energy transfer from small n phases to larger n phases. As evidenced by photoluminescence (PL), scanning electron microscopy (SEM), and atomic force microscopy (AFM) characterization, EDBr2 improves the morphology by reduction of pinholes and passivation of defects, subsequently improving the efficiencies and operational lifetimes of quasi‐2D blue PeLEDs.

Funder

Welch Foundation

Russian Science Foundation

National Science Foundation

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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